What are the main uses of (2S-Trans) -3-Amino-2-Methyl-4-Oxo-1-Azetidinesulfonic Acid?
(2S-trans) - 3-amino-2-methyl-4-oxo-1-azacyclobutanesulfonic acid, this substance has a wide range of uses. In the field of medicine, it is a key intermediate for the synthesis of many important drugs. In the development of antibacterial drugs, this can be used as a basis to build unique chemical structures, enhance the affinity between drugs and bacterial targets, and enhance antibacterial activity. For example, some new beta-lactam antibiotics, with the help of the specific spatial configuration and active groups of the substance, optimize the antibacterial spectrum and pharmacokinetic properties to provide a better choice for anti-infective treatment.
In the field of organic synthesis, it has the characteristics of high reactivity and good selectivity, and can participate in a variety of complex organic reactions. Like nucleophilic substitution, cyclization reaction, etc., with its azacyclobutane structure and sulfonic acid group characteristics, it can accurately build a complex organic molecular skeleton, help develop new organic materials, bioactive molecules, etc., and expand new paths for organic synthesis chemistry.
In biochemical research, it can be used as a probe molecule to explore specific biochemical reactions and protein-ligand interactions in organisms. Because of its unique structure, it can specifically bind certain biomacromolecules, and through labeling and detection, it provides a powerful tool for basic research in life sciences.
What are the physical properties of (2S-Trans) -3-Amino-2-Methyl-4-Oxo-1-Azetidinesulfonic Acid?
(2S-trans) - 3-amino-2-methyl-4-oxo-1-azacyclobutanesulfonic acid, this is a unique organic compound. Its physical properties are of great interest.
Under normal conditions, it may be in the form of a white to off-white crystalline powder, just like a fine snowflake condensed in one place, delicate and uniform. This state is easy to use and subsequent experimental operations. Due to its good fluidity, it is not easy to adhere and retain when transferred between various vessels.
When it comes to the melting point, it has been accurately determined that the phase transition occurs within a specific temperature range. When the temperature gradually rises to a certain critical value, the compound seems to quietly start a journey of metamorphosis, gradually melting from the solid state to the liquid state. This melting point value is one of the key physical constants to identify the substance, and it is also an important basis for considering its purity. The higher the purity, the narrower the melting point range and approach the theoretical value.
Solubility is also an important physical property of this compound. In water, this compound exhibits a certain solubility and can interact with water molecules to form a uniform solution system. However, in organic solvents, the solubility may be different. For example, in some polar organic solvents, the solubility is better, but in non-polar organic solvents, the solubility is poor. This difference in solubility is of great significance in the separation, purification and application of compounds.
In addition, its density is also an inherent physical property. Although the specific value needs to be determined by rigorous experiments, this density parameter has a significant impact on the storage, transportation, and mixing of substances with other substances.
(2S-trans) -3-amino-2-methyl-4-oxo-1-azacyclobutanesulfonic acid Many physical properties are interrelated and affect its application in different fields, laying the foundation for in-depth research and rational utilization of this compound.
What is the chemical synthesis method of (2S-Trans) -3-Amino-2-Methyl-4-Oxo-1-Azetidinesulfonic Acid?
The chemical synthesis of (2S-trans) -3-amino-2-methyl-4-oxo-1-azacyclobutanesulfonic acid is a delicate technique that requires specific methods according to chemical principles.
To synthesize this compound, a suitable starting material is often used through a series of chemical reactions. Initially, or a compound containing a specific functional group is selected, and its structure is related to the target product. If an azacyclobutane derivative with a suitable substituent is used as the starting material, the derivative must contain groups that can be further converted into the desired amino, methyl, carbonyl and sulfonic acid groups.
First modify the specific position of the starting material, and the methyl group can be introduced by means of nucleophilic substitution reaction. The selection of nucleophilic reagents is extremely critical, and its reactivity and selectivity need to be considered to ensure that the methyl group is precisely connected to the designated position without affecting other parts of the molecule.
Then, through oxidation or other suitable reactions, the specific group is converted to carbonyl to construct a 4-oxo structure. This process requires strict control of reaction conditions, such as temperature, reaction time and reagent dosage, in order to obtain a high-purity target intermediate.
As for the introduction of 3-amino groups, reactions such as reductive amination can be used. Using a suitable nitrogenous compound as the amine source, under suitable catalyst and reaction conditions, the nitrogen atom is connected to the target position. This step requires attention to avoid side reactions and ensure the accuracy of amino group introduction.
Finally, the 1-azacyclobutane sulfonic acid part is constructed. The sulfonic acid group can be introduced into the molecule by reacting with the sulfonic acid-containing precursor to complete the synthesis of the final target product. Throughout the synthesis process, each step of the reaction needs to be carefully controlled, and the purification and identification of the reaction conditions and intermediates cannot be ignored. In this way, (2S-trans) - 3-amino-2-methyl-4-oxo-1-azacyclobutane sulfonic acid can be obtained.
What is the price range of (2S-Trans) -3-Amino-2-Methyl-4-Oxo-1-Azetidinesulfonic Acid in the market?
Nowadays, (2S-trans) -3-amino-2-methyl-4-oxo-1-azacyclobutane sulfonic acid is in the market, but its price is known to everyone. This substance has a wide range of uses and is useful in many fields. Therefore, the price is related to the interests of many merchants and is also valued by scholars.
Looking at the past market situation, the price of such substances often varies depending on the quality, quantity, and time. The price of the superior is higher than that of the mediocre; when it is widely sought, the price may rise; when it is abundant, the price may decrease.
However, the market is unpredictable today, although it is difficult to find its exact price. If we want to know the details, we must visit various merchants, inquire about their quotations, and consider comprehensively before we can get a rough figure. And there are also differences in the market from place to place. The price of north and south may be different, and the return of east and west may also be different.
Or I heard that the price ranges from a few yuan per gram to a few dozen yuan. However, this is only a guess and cannot be fully believed. To get an accurate price, you need to enter the market in person and inquire from many parties before you can know the price between the markets.
What are the relevant application fields of (2S-Trans) -3-Amino-2-Methyl-4-Oxo-1-Azetidinesulfonic Acid?
(2S-trans) -3-amino-2-methyl-4-oxo-1-azacyclobutanesulfonic acid has a wide range of related application fields. In the field of pharmaceutical chemistry, it is often a key intermediate. It covers the process of pharmaceutical synthesis, and the preparation of many antibacterial and anti-infective drugs depends on it as a starting material. Due to its unique structure, it can introduce specific functional groups through a series of chemical reactions to shape complex drug molecular structures to achieve specific pharmacological activities.
It also has its uses in materials science. Because it contains special functional groups, it can participate in the reaction of material surface modification. After this modification, the hydrophilicity, biocompatibility or chemical stability of the surface of the material can be significantly improved. For example, in the field of biomedical materials, the affinity between materials and biological tissues can be better and the immune rejection reaction can be reduced.
In addition, in the field of biochemical research, it also has important value. Or it can be used as a biochemical reagent for the study of biological macromolecules such as proteins and enzymes. Through specific interactions with biomacromolecules, researchers can gain insight into the structure and function of biomolecules, providing powerful tools for the exploration of life sciences.
This compound plays an indispensable role in many fields such as medicine, materials, biochemistry, etc., and makes great contributions to the development of various fields.